Designing tools for assessing the reliability of electric motor torque measurements by using identifiers of anomalous deviations in a noisy signal system

V. Kvasnikov, D. Kvashuk, Mykhailo Prygara, Jaroslav Legeta
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Abstract

The problem of the reliability of measurements of rotational parameters of electric motors was solved, which was focused on the development of an algorithm for evaluating measurements under conditions of additional noise. An analysis of methodological approaches and mathematical tools used to process and interpret the uncertainty of measurement results was carried out. Cases where they may not be effective due to high noise levels were considered. To detect anomalies in the signal, an algorithm for assessing the reliability of measurements using fuzzy logic was proposed. A structural diagram of the model for measuring the torque of an electric motor under the conditions of a noisy signal was developed, where transfer functions were used to model the angular velocity and torque parameters. A method for detecting anomalies in noisy signals is presented, which identifies the amplitude and time characteristics of spiking pulses. The method includes the application of a wide range of analytical tools for deep analysis of signals and is particularly effective for detecting anomalies that may be hidden in background noise. A prototype of a measuring bench was developed, which uses neural networks to detect anomalies when measuring the rotational parameters of electric motors, which made it possible to obtain a training sample using a sample electric motor and apply it to evaluate the parameters of another electric motor. In a practical aspect, the developed methods and technological solutions for improving the reliability of measurements of rotational parameters of electric motors could be used to make corrections in existing systems. In particular, they could be used in industry, electric transport, as well as in the aerospace and military sectors where the reliability of measuring systems is important
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利用噪声信号系统中的异常偏差识别器,设计评估电机扭矩测量可靠性的工具
解决了电动机旋转参数测量的可靠性问题,重点是开发一种在额外噪声条件下评估测量结果的算法。对用于处理和解释测量结果不确定性的方法和数学工具进行了分析。考虑了这些方法和工具在高噪音条件下可能失效的情况。为了检测信号中的异常情况,提出了一种利用模糊逻辑评估测量可靠性的算法。绘制了在噪声信号条件下测量电动马达扭矩的模型结构图,其中传递函数用于建立角速度和扭矩参数模型。介绍了一种检测噪声信号异常的方法,该方法可识别尖峰脉冲的振幅和时间特征。该方法包括应用各种分析工具对信号进行深入分析,对于检测可能隐藏在背景噪声中的异常现象尤为有效。我们开发了一个测量台原型,在测量电动机旋转参数时利用神经网络检测异常,这样就可以利用一个电动机样本获得训练样本,并将其用于评估另一个电动机的参数。在实用方面,为提高电机旋转参数测量的可靠性而开发的方法和技术解决方案可用于对现有系统进行修正。特别是,它们可用于对测量系统可靠性要求较高的工业、电动交通、航空航天和军事领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Eastern-European Journal of Enterprise Technologies
Eastern-European Journal of Enterprise Technologies Mathematics-Applied Mathematics
CiteScore
2.00
自引率
0.00%
发文量
369
审稿时长
6 weeks
期刊介绍: Terminology used in the title of the "East European Journal of Enterprise Technologies" - "enterprise technologies" should be read as "industrial technologies". "Eastern-European Journal of Enterprise Technologies" publishes all those best ideas from the science, which can be introduced in the industry. Since, obtaining the high-quality, competitive industrial products is based on introducing high technologies from various independent spheres of scientific researches, but united by a common end result - a finished high-technology product. Among these scientific spheres, there are engineering, power engineering and energy saving, technologies of inorganic and organic substances and materials science, information technologies and control systems. Publishing scientific papers in these directions are the main development "vectors" of the "Eastern-European Journal of Enterprise Technologies". Since, these are those directions of scientific researches, the results of which can be directly used in modern industrial production: space and aircraft industry, instrument-making industry, mechanical engineering, power engineering, chemical industry and metallurgy.
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